Lu Jiahui, Chen Yingying, Lei Yaojie, Jaumaux Pauline, Tian Hao, Wang Guoxiu
Faculty of Science, Centre for Clean Energy Technology, School of Mathematical and Physical Science, University of Technology Sydney, Ultimo, NSW, 2007, Australia.
School of Chemistry and Chemical Engineering, Yangzhou University, Yangzhou, 225002, People's Republic of China.
Nanomicro Lett. 2025 Mar 19;17(1):194. doi: 10.1007/s40820-024-01632-w.
Alkali metal batteries (AMBs) have undergone substantial development in portable devices due to their high energy density and durable cycle performance. However, with the rising demand for smart wearable electronic devices, a growing focus on safety and durability becomes increasingly apparent. An effective strategy to address these increased requirements involves employing the quasi-solid gel electrolytes (QSGEs). This review focuses on the application of QSGEs in AMBs, emphasizing four types of gel electrolytes and their influence on battery performance and stability. First, self-healing gels are discussed to prolong battery life and enhance safety through self-repair mechanisms. Then, flexible gels are explored for their mechanical flexibility, making them suitable for wearable devices and flexible electronics. In addition, biomimetic gels inspired by natural designs are introduced for high-performance AMBs. Furthermore, biomass materials gels are presented, derived from natural biomaterials, offering environmental friendliness and biocompatibility. Finally, the perspectives and challenges for future developments are discussed in terms of enhancing the ionic conductivity, mechanical strength, and environmental stability of novel gel materials. The review underscores the significant contributions of these QSGEs in enhancing AMBs performance, including increased lifespan, safety, and adaptability, providing new insights and directions for future research and applications in the field.
碱金属电池(AMBs)因其高能量密度和持久的循环性能,在便携式设备中得到了长足发展。然而,随着对智能可穿戴电子设备需求的不断增加,对安全性和耐用性的关注度日益凸显。满足这些更高要求的一个有效策略是采用准固态凝胶电解质(QSGEs)。本综述聚焦于QSGEs在AMBs中的应用,重点介绍了四种凝胶电解质及其对电池性能和稳定性的影响。首先讨论了自修复凝胶,它通过自我修复机制延长电池寿命并提高安全性。接着探讨了柔性凝胶,因其具有机械柔韧性,适用于可穿戴设备和柔性电子产品。此外,还介绍了受自然设计启发的仿生凝胶,用于高性能AMBs。再者,展示了源自天然生物材料的生物质材料凝胶,具有环境友好性和生物相容性。最后,从提高新型凝胶材料的离子电导率、机械强度和环境稳定性方面,讨论了未来发展的前景与挑战。本综述强调了这些QSGEs在提升AMBs性能方面的重大贡献,包括延长使用寿命、提高安全性和适应性,为该领域未来的研究和应用提供了新的见解和方向。